Literature DB >> 2283539

Three-dimensional analysis of auditory-evoked potentials in rat neocortex.

D S Barth1, S Di.   

Abstract

1. A 8 X 8-channel microelectrode array was used to map epicortical field potentials evoked by bilaterally presented click stimuli from a 8 X 8-mm2 area in the right parietotemporal neocortex of four rats. In two rats, a 16-channel microelectrode array was also inserted into primary auditory cortex to record the laminar profile of auditory evoked potentials (AEP). 2. The epicortical responses began with a positive-negative fast wave followed by a positive-negative slow wave, similar to the previously reported P1, N1, P2, N2 complex. Topographical distributions of the potentials at the peak of each of these waves were distinct, suggesting that they were produced by separate but overlapping populations of cells. 3. Laminar recording revealed the asynchronous participation of supragranular and infragranular pyramidal cells in the generation of the evoked-response complex. The surface-recorded P1 was primarily produced by supragranular cells and the N1, by infragranular cells. The P2 and N2 were produced by temporally overlapping contributions from both cell groups. 4. We conclude that middle-latency components of the AEP complex are produced by both sequential and parallel activation of subpopulations of pyramidal cells in primary auditory cortex.

Entities:  

Mesh:

Year:  1990        PMID: 2283539     DOI: 10.1152/jn.1990.64.5.1527

Source DB:  PubMed          Journal:  J Neurophysiol        ISSN: 0022-3077            Impact factor:   2.714


  19 in total

1.  Spectral integration in primary auditory cortex attributable to temporally precise convergence of thalamocortical and intracortical input.

Authors:  Max F K Happel; Marcus Jeschke; Frank W Ohl
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2.  Uncoupling PSD-95 interactions leads to rapid recovery of cortical function after focal stroke.

Authors:  Luka R Srejic; William D Hutchison; Michelle M Aarts
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3.  Dissociation of slow waves and fast oscillations above 200 Hz during GABA application in rat somatosensory cortex.

Authors:  Richard J Staba; Peter C Bergmann; Daniel S Barth
Journal:  J Physiol       Date:  2004-10-01       Impact factor: 5.182

4.  Processing stages underlying word recognition in the anteroventral temporal lobe.

Authors:  Eric Halgren; Chunmao Wang; Donald L Schomer; Susanne Knake; Ksenija Marinkovic; Julian Wu; Istvan Ulbert
Journal:  Neuroimage       Date:  2006-02-17       Impact factor: 6.556

5.  Gamma oscillations in the auditory cortex of awake rats.

Authors:  Paulo Vianney-Rodrigues; Ovidiu D Iancu; John P Welsh
Journal:  Eur J Neurosci       Date:  2010-11-09       Impact factor: 3.386

6.  Thalamocortical projections to rat auditory cortex from the ventral and dorsal divisions of the medial geniculate nucleus.

Authors:  Philip H Smith; Daniel J Uhlrich; Karen A Manning; Matthew I Banks
Journal:  J Comp Neurol       Date:  2012-01-01       Impact factor: 3.215

7.  Linking topography to tonotopy in the mouse auditory thalamocortical circuit.

Authors:  Troy A Hackett; Tania Rinaldi Barkat; Barbara M J O'Brien; Takao K Hensch; Daniel B Polley
Journal:  J Neurosci       Date:  2011-02-23       Impact factor: 6.167

8.  Heightened nicotinic regulation of auditory cortex during adolescence.

Authors:  Hideki D Kawai; Ho-An Kang; Raju Metherate
Journal:  J Neurosci       Date:  2011-10-05       Impact factor: 6.167

9.  Temporal envelope of time-compressed speech represented in the human auditory cortex.

Authors:  Kirill V Nourski; Richard A Reale; Hiroyuki Oya; Hiroto Kawasaki; Christopher K Kovach; Haiming Chen; Matthew A Howard; John F Brugge
Journal:  J Neurosci       Date:  2009-12-09       Impact factor: 6.167

10.  Neurophysiological and neurochemical animal models of schizophrenia: focus on glutamate.

Authors:  Stephan Bickel; Daniel C Javitt
Journal:  Behav Brain Res       Date:  2009-05-09       Impact factor: 3.332

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